Forward osmosis (FO) process has been attracting attention for its potential applications such as industrial wastewater treatment, wastewater reclamation and seawater desalination. Particularly, in terms of fouling reversibility and operating energy consumption, the FO process is assumed to be preferable to the reverse osmosis (RO) process. Despite these advantages, there is a difficulty in the empirical step due to the lack of separation and recovery techniques of the draw solution. Therefore, rather than using FO alone, recent developments of the FO process have adapted a hybrid system without draw solution separation/recovery systems, such as the FO-RO osmotic dilution system. In this study, we investigated the performance of the hollow fiber FO module according to various operating conditions. The change of permeate flow rate according to the flow rates of the draw and feed solutions in the process operation is a factor that increases the permeate flow rate, one of the performance factors in the positive osmosis process. Our results reveal that flow rates of draw and feed solutions affect the membrane performance, such as the water flux and the reverse solute flux. Moreover, use of hydraulic pressure on the feed side was shown to yield slightly higher flux than the case without applied pressure. Thus, optimizing the operating conditions is important in the hollow fiber FO system.
열유도상분리법(TIPS) 및 연신의 복합공정으로 막증류(Membrane distillation, MD)용의 소수성 및 다공성 PVDF 중공사 분리막을 제조하였다. 제조된 분리막을 막증류 공정에 적용하여 처리수량을 극대화하기 위한 방안으로 모듈의 형태와 운전조건 및 병렬 연결 시 배관의 크기 영향을 확인하고자 하였다. 진공 막증류 모듈의 최적화 실험에서는 모듈 내 분리막의 충진율과 길이가 증가할수록 플럭스는 감소하며, 진공포트의 위치는 모듈을 수직으로 연결하였을 때 원수의 inlet 방향에 위 치할수록 플럭스 측면에서 가장 유리한 것으로 확인되었다. 모듈의 헤더배관의 크기선정에서는 중공사막의 내경면적과 헤더 배관의 내경면적이 동일할 경우 최대 플럭스를 나타냄을 확인할 수 있었으며, 모듈 내 선속도가 높을수록 높은 플럭스를 나타내지만 모듈에 작용하는 압력 역시 비례하여 증가하기 때문에 최적 선속도를 찾는 것이 필요하다.
Pressure retarded osmosis(PRO) has attracted much attention as potential technology to reduce the overall energy consumption for reverse osmosis(RO) desalination. The RO/PRO hybrid process is considered as the most logical next step for future desalination. The PRO process aims to harness the osmotic energy difference of two aqueous solutions separated by a semipermeable membrane. By using the concentrated water(RO brine) discharged from existing RO plants, the PRO process can effectively exploit a greater salinity gradient to reduce the energy cost of processing concentrated water. However, in order to use RO brine as the draw solution, PRO membrane must have high water flux and enough mechanical strength to withstand the high operational pressure. This study investigates the development of a thin film composite PRO membrane and spiral wound module for high power density. Also, the influence of membrane backing layer on the overall power density was studied using the characteristic factors of PRO membranes. Finally, the performance test of an 8-inch spiral wound module was carried out under various operating conditions(i.e. hydraulic pressure, flow rate, temperature). As the flow rate and temperature increased under the same hydraulic pressure, the PRO performance increased due to the growth of water permeability coefficient and osmotic pressure. For a high performance PRO system, in order to optimize the operating conditions, it is highly recommended that the flow pressure be minimized while the flow rate is maintained at a high level.
강도가 강하고 내약품성, 무독성, 내연소성 등의 장점을 가지고 있는 PVDF (polyvinylidene fluoride) 나노섬유로 기공이 각각 0.3, 0.4 μm 평막을 제조한 후, 그 평막으로 나권형 모듈을 각각 제작하였다. 그중 0.3 μm 모듈은 제조 시 부직 포를 포함하지 않았고, 기공이 0.4 μm 모듈은 제조 시 부직포를 포함하였다. 카올린과 휴믹산으로 조제한 모사용액과 순수를 대상으로 두 모듈의 투과선속와 제거율을 비교하였고, 물 역세척을 실시한 후 회복률과 여과저항을 계산하였다. 또한, 기공이 0.4 μm인 나권형 모듈을 사용하여 유량과 막간압력차가 처리율과 여과저항에 미치는 영향을 고찰하였다.